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Okey, I´ve been googling for a while, and debugging for hours. I have a perfectly working small database, there is a table exactly named "Category" which in it´s turn has a row named exactly "Name". I´ve tried every version (Capitalized and not) of the names but my function doesnt return what I want it to return. Anyone out there spotting an obvious error? The database connects just fine... Or am I looking at something seriously troublesome db-conflict. thanks in advance!

This is my functions.php which I´ve included into index.php and had a function call at body. "

<?php 

//Connect to database

$link = mysqli_connect('localhost', 'root', 'root');
if (!$link)
{
    $output = 'Unable to connect to the database server.';
    echo $output;
    exit();
}

if (!mysqli_set_charset($link, 'utf8'))
{
    $output = 'Unable to set database connection encoding.';
    echo $output;
    exit();
}

if (!mysqli_select_db($link, 'Asperod6'))
{
    $output = 'Unable to locate the "Asperod6" database.';
    echo $output;
    exit();
}

    $output = 'Database connection established.';
    echo $output;

//Funktion som skriver ut meny


function display_menus()
{
    $result = mysqli_query($link, "SELECT * FROM Category");

    if (!$result)
        {
            $error = 'Error fetching Kategorier: ' . mysqli_error($link);
            echo ("There is none");
        }



        if (mysqli_num_rows($result) > 0) 
        {
            echo "<ul>";

            while ($row = mysqli_fetch_array($result)) 
            {
                echo "<li>" . $row['Name'] . "</li>";
            }

            echo "</ul>";

            mysqli_free_result($result);

        }

} 





mysqli_close($link);

?>

share|improve this question
    
try adding the db name before the table name SELECT * FROM DBNAME.Category - and shows us the db connection function, and the db schemata –  Dagon May 6 '13 at 3:49
    
what is in $link ? and do what @Dagon suggested –  swapnesh May 6 '13 at 3:50
    
... if $link is defined out side the function, it needs to be made global or parsed –  Dagon May 6 '13 at 3:51
2  
Is $link in global scope ? –  The Alpha May 6 '13 at 3:51
    
oops I dunno where to post further code –  Michael Scott May 6 '13 at 3:55

2 Answers 2

Because for some reason you are not displaying the actual error message to yourself, nor have php error reporting turned on. While if you let PHP to tell you errors, you'd be told that $link is undefined.

  1. display an actual error

    $result = mysqli_query($link, "SELECT * FROM Category"); 
    if (!$result) {
       trigger_error(mysqli_error($link));
    } 
    
  2. Make PHP report errors

    ini_set('display_errors',1);
    error_reporting(E_ALL);
    
  3. Finally, after having all there errors reported to you, make $link global inside function

    function display_menus()
    {
        global $link;
        ...
    
share|improve this answer
    
That´s actually a very sweet advice... Thank YOU! –  Michael Scott May 6 '13 at 4:05
    
lol. very funny and caustic –  Yuck May 6 '13 at 4:06
    
you know global is not usually a good idea ;) –  Dagon May 6 '13 at 4:07

Try placing a die() statement along with your connection statement and get the actual error. How are you certain it is connecting to the database?

Update -

Looking at the update now, the problem might be that the scope of that variable.

Add

global $link 

in your function. Adding the die() statement in the mysqli_query() statement will give you the exact error.

share|improve this answer
    
what a recommendation! –  Yuck May 6 '13 at 4:07

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